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A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity

Pre-mRNA splicing is an essential step of eukaryotic gene expression carried out by a series of dynamic macromolecular protein/RNA complexes, known collectively and individually as the spliceosome. This series of spliceosomal complexes define, assemble on, and catalyze the removal of introns. Molecu...

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Autores principales: Suzuki, Jessie M. N. G. L., Osterhoudt, Kenneth, Cartwright-Acar, Catiana H., Gomez, Destiny R., Katzman, Sol, Zahler, Alan M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8865678/
https://www.ncbi.nlm.nih.gov/pubmed/35143478
http://dx.doi.org/10.1371/journal.pgen.1010028
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author Suzuki, Jessie M. N. G. L.
Osterhoudt, Kenneth
Cartwright-Acar, Catiana H.
Gomez, Destiny R.
Katzman, Sol
Zahler, Alan M.
author_facet Suzuki, Jessie M. N. G. L.
Osterhoudt, Kenneth
Cartwright-Acar, Catiana H.
Gomez, Destiny R.
Katzman, Sol
Zahler, Alan M.
author_sort Suzuki, Jessie M. N. G. L.
collection PubMed
description Pre-mRNA splicing is an essential step of eukaryotic gene expression carried out by a series of dynamic macromolecular protein/RNA complexes, known collectively and individually as the spliceosome. This series of spliceosomal complexes define, assemble on, and catalyze the removal of introns. Molecular model snapshots of intermediates in the process have been created from cryo-EM data, however, many aspects of the dynamic changes that occur in the spliceosome are not fully understood. Caenorhabditis elegans follow the GU-AG rule of splicing, with almost all introns beginning with 5’ GU and ending with 3’ AG. These splice sites are identified early in the splicing cycle, but as the cycle progresses and “custody” of the pre-mRNA splice sites is passed from factor to factor as the catalytic site is built, the mechanism by which splice site identity is maintained or re-established through these dynamic changes is unclear. We performed a genetic screen in C. elegans for factors that are capable of changing 5’ splice site choice. We report that KIN17 and PRCC are involved in splice site choice, the first functional splicing role proposed for either of these proteins. Previously identified suppressors of cryptic 5’ splicing promote distal cryptic GU splice sites, however, mutations in KIN17 and PRCC instead promote usage of an unusual proximal 5’ splice site which defines an intron beginning with UU, separated by 1nt from a GU donor. We performed high-throughput mRNA sequencing analysis and found that mutations in PRCC, and to a lesser extent KIN17, changed alternative 5’ splice site usage at native sites genome-wide, often promoting usage of nearby non-consensus sites. Our work has uncovered both fine and coarse mechanisms by which the spliceosome maintains splice site identity during the complex assembly process.
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spelling pubmed-88656782022-02-24 A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity Suzuki, Jessie M. N. G. L. Osterhoudt, Kenneth Cartwright-Acar, Catiana H. Gomez, Destiny R. Katzman, Sol Zahler, Alan M. PLoS Genet Research Article Pre-mRNA splicing is an essential step of eukaryotic gene expression carried out by a series of dynamic macromolecular protein/RNA complexes, known collectively and individually as the spliceosome. This series of spliceosomal complexes define, assemble on, and catalyze the removal of introns. Molecular model snapshots of intermediates in the process have been created from cryo-EM data, however, many aspects of the dynamic changes that occur in the spliceosome are not fully understood. Caenorhabditis elegans follow the GU-AG rule of splicing, with almost all introns beginning with 5’ GU and ending with 3’ AG. These splice sites are identified early in the splicing cycle, but as the cycle progresses and “custody” of the pre-mRNA splice sites is passed from factor to factor as the catalytic site is built, the mechanism by which splice site identity is maintained or re-established through these dynamic changes is unclear. We performed a genetic screen in C. elegans for factors that are capable of changing 5’ splice site choice. We report that KIN17 and PRCC are involved in splice site choice, the first functional splicing role proposed for either of these proteins. Previously identified suppressors of cryptic 5’ splicing promote distal cryptic GU splice sites, however, mutations in KIN17 and PRCC instead promote usage of an unusual proximal 5’ splice site which defines an intron beginning with UU, separated by 1nt from a GU donor. We performed high-throughput mRNA sequencing analysis and found that mutations in PRCC, and to a lesser extent KIN17, changed alternative 5’ splice site usage at native sites genome-wide, often promoting usage of nearby non-consensus sites. Our work has uncovered both fine and coarse mechanisms by which the spliceosome maintains splice site identity during the complex assembly process. Public Library of Science 2022-02-10 /pmc/articles/PMC8865678/ /pubmed/35143478 http://dx.doi.org/10.1371/journal.pgen.1010028 Text en © 2022 Suzuki et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Suzuki, Jessie M. N. G. L.
Osterhoudt, Kenneth
Cartwright-Acar, Catiana H.
Gomez, Destiny R.
Katzman, Sol
Zahler, Alan M.
A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title_full A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title_fullStr A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title_full_unstemmed A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title_short A genetic screen in C. elegans reveals roles for KIN17 and PRCC in maintaining 5’ splice site identity
title_sort genetic screen in c. elegans reveals roles for kin17 and prcc in maintaining 5’ splice site identity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8865678/
https://www.ncbi.nlm.nih.gov/pubmed/35143478
http://dx.doi.org/10.1371/journal.pgen.1010028
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